Abstract
Based on ductility exhaustion theory and the generalized energy-based damage parameter, a new viscosity-based life prediction model is introduced to account for the mean strain/stress effects in the low cycle fatigue regime. The loading waveform parameters and cyclic hardening effects are also incorporated within this model. It is assumed that damage accrues by means of viscous flow and ductility consumption is only related to plastic strain and creep strain under high temperature low cycle fatigue conditions. In the developed model, dynamic viscosity is used to describe the flow behavior. This model provides a better prediction of Superalloy GH4133's fatigue behavior when compared to Goswami's ductility model and the generalized damage parameter. Under non-zero mean strain conditions, moreover, the proposed model provides more accurate predictions of Superalloy GH4133's fatigue behavior than that with zero mean strains.
Copyright © 2011 De Gruyter
Artikel in diesem Heft
- A New Ductility Exhaustion Model for High Temperature Low Cycle Fatigue Life Prediction of Turbine Disk Alloys
- Perforated Arc-Tabs for Jet Control
- Numerical Analysis of Intercooled and Recuperated Turbofan Engine
- Jet Impingement and Forced Convection Cooling Experimental Study in Rotating Turbine Blades
- Numerical Simulation and Experimental Study of a Dental Handpiece Air Turbine
Artikel in diesem Heft
- A New Ductility Exhaustion Model for High Temperature Low Cycle Fatigue Life Prediction of Turbine Disk Alloys
- Perforated Arc-Tabs for Jet Control
- Numerical Analysis of Intercooled and Recuperated Turbofan Engine
- Jet Impingement and Forced Convection Cooling Experimental Study in Rotating Turbine Blades
- Numerical Simulation and Experimental Study of a Dental Handpiece Air Turbine